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Here's an interesting code snippet:

public class Superclass {

    public static void main (String[] args){
        Superclass obj = new Subclass();
        obj.doSomething(); #prints "from Superclass"
    }

    private void doSomething(){System.out.println("from Superclass");}
}

class Subclass extends Superclass {

    private void doSomething(){System.out.println("from Subclass");}

}

I know that subclasses do not inherit the private members of its parent, but here obj manages to call a method to which it should have no access. At compile time obj is of type Superclass, at runtime of type Subclass.

This probably has something to do with the fact that the call to doSomething() is taking place inside the driver class, which happens to be its own class (and why it's possible to invoke doSomething() in the first place).

So the question boils down to, how does obj have access to a private member of its parent?

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6 Answers 6

up vote 5 down vote accepted

You answered it yourself. As the private methods are not inherited, a superclass reference calls its own private method.

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If by "reference" you mean the instance of Subclass referenced by the pointer stored in variable obj, it's a circular answer. That instance is still of type Subclass, and it should not have access to the parent's private member. –  Victor Cheung Jan 18 '13 at 3:50
2  
The point is that you're assigning it to a superclass reference. And with that method being private, it's not going to be overridden by subclass implementation. That reference knows about only one doSomething method, which is in the superclass. –  Swapnil Jan 18 '13 at 3:52

Private methods are only for the owner.

Not even for the kids, relatives or friends of the owner.

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When you used this line:

Superclass obj = new Subclass();

You casted Subclass into a Superclass Object, which uses only the methods of the Superclass and the same data. If you casted it back into a Subclass, you could use the Subclass methods again, like so:

((Subclass)obj).doSomething(); #prints "from Subclass"
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It works because you are casting to a Superclass from within a method of the Superclass. In that context, Superclass.doSomething is available to the compiler.

If you were to change your super and subclasses to two different arbitrary classes A and B, not related to the class containing the main method, and try the same code, the compiler would complain about not having access to the method.

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Superclass obj = new Subclass();

At this point obj is both things, a subclass, and a superclass object. The fact that you use Superclass in the declaration of the variable is just a matter of casting it, thats it.

When you do: obj.doSomething(); you are telling the compiler to call the private method doSomething() of obj. Because you are doing it from the main static method inside the Superclass definition, the compiler can call it.

If you would use the main method of the Subclass rather than the one in Superclass you would not be able to access that method because as you said, is not inherited and is not part of your definition of Subclass class.

So basically you understood inheritance correctly. The problem was related with visibility of private methods.

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Since the reference type of the object obj is SuperClass, a call to doSomething() tries to access the private method defined in SuperClass itself (private methods cannot be overridden). As doSomething() is accessible within SuperClass, the main method can call doSomething() without giving any error/s.

Hope this helps! :-)

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